[int(x +y+z) for x in '123456789' for y in '0123456789' for z in '123456789' if x==z
2016-04-08
方程ax² + bx + c = 0标准解法应该是先考虑a,b是否为零啊,当a !=0时分(b**2 - 4*a*c )为非负和负两种
2016-04-08
def average(*args):
aa = float(sum([x for x in args]))
if len(args) == 0:
return 0.0
else:
return aa/len(args)
print average()
print average(1, 2)
print average(1, 2, 2, 3, 4)
aa = float(sum([x for x in args]))
if len(args) == 0:
return 0.0
else:
return aa/len(args)
print average()
print average(1, 2)
print average(1, 2, 2, 3, 4)
2016-04-08
def square_of_sum(L):
return sum([x*x for x in L])
print square_of_sum([1, 2, 3, 4, 5])
print square_of_sum([-5, 0, 5, 15, 25])
return sum([x*x for x in L])
print square_of_sum([1, 2, 3, 4, 5])
print square_of_sum([-5, 0, 5, 15, 25])
2016-04-08
a = str(input('please enter the months:'))
months = set (['Jan', 'Feb', 'Mar', 'Apr', 'May', 'Jun', 'Jul', 'Aug', 'Sep', 'Oct', 'Nov', 'Dec'])
if a in months:
print ('good job!')
else:
print ('wrong!')
print('end')
我觉得按照题目要求的话,要判断用户输入的数字 应该是按这个代码要求来输入
months = set (['Jan', 'Feb', 'Mar', 'Apr', 'May', 'Jun', 'Jul', 'Aug', 'Sep', 'Oct', 'Nov', 'Dec'])
if a in months:
print ('good job!')
else:
print ('wrong!')
print('end')
我觉得按照题目要求的话,要判断用户输入的数字 应该是按这个代码要求来输入
2016-04-08
已采纳回答 / 清波
这个是网站的 验证机制有bug, 代码是对的,但是要想通过网站的验证,需要修改下代码,去掉u:<...code...>但是题主你的代码是正确的,在本机是可以执行的。
2016-04-07
